[0001] The present invention relates to a process for producing isobutene by dehydro-isomerisation
of normal butane.
[0002] Isobutene is a valuable raw material in the petro-chemical industry, and many commercial
processes have been developed using isobutene as starting material. For example, isobutene
can be:
(a) oxidised catalytically to produce methacrolein and methacrylic acid;
(b) ammoxidised to produce methaerylonitrile;
(c) hydrated to produce tertiary butyl alcohol;
(d) reacted with formaldehyde to produce isoprene (modified Prins reaction);
(e) reacted with methanol to produce methyl teriary butyl ether which is a valuable
gasoline blending component for high octane motor fuels;
(f) used as an alkylating agent either as such or in the form of its halogenated derivatives;
and
(g) used as a monomer which can be homo-polymerised to a wide variety of polyisobutenes
or copolymerised with a range of other monomers to produce a selection of rubbery
materials.
[0003] Hitherto, the only routes available to meet this enormous demand for isobutene for
the aforementioned uses have been by converting the more readily available normal
butane to isobutene in a two-stage process. The two stages are those of isomerisation
and dehydrogenation. For example normal butanes can be isomerised to isobutane by
the catalyst and process disclosed in our British Patent Nos: 953187 and 953189 respectively.
The isobutane thus produced may then be dehydrogenated to the isobutene according
to the process disclosed for example in our British Patent No: 1507549. Alternatively,
normal butane may first be dehydrogenated to normal butene and then subsequently isomerised
by known techniques as disclosed for example in our British Patent Nos: 1065006 and
1065010, to the corresponding isobutene. The catalysts, reaction conditions and the
recovery techniques needed for each of these stages are different and this places
an economic penalty on the composite two-stage process for producing isobutene from
normal butane.
[0004] Our earlier British Patent Specification Nos 1507549, 1507778, 1533169 and 1537780
also describe the use of gallium compounds on various supports for the conversion
of C
3 - C
8 hydrocarbons to a variety of products including olefins, oligomers and aromatics.
Moreover, our British Patent Specification No 1561590 also claims and describes the
use of gallium compounds in combination with aluminosilicates having a high silica
to alumina ratio for the conversion of light hydrocarbons into aromatics. Such zeolites
containing a high silica to alumina ratio are typified by high acidity as shown by
a number of tests, for example the α-test as described in a letter to the editor entitled
"Superactive Crystalline Aluminosilicate Hydrocarbon Cracking Catalysts", by Weisz,
P. B. and Miale, J. N. in the Journal of Catalysis, Vol 4, pp 527 - 529 (August 1965).
The OC-value of the support is an indication of its hexane cracking activity.
[0005] It has now been found that by using a catalyst composition in which the support has
a low acidity, n-paraffins can be dehydroisomerised to iso-olefins in a single step
and n-olefins can be isomerised directly to iso-olefins.
[0006] It is an object of the present invention to devise an integrated single stage process
for dehydro-isomerising normal butanes to isobutenes by selecting a catalyst which
is capable of carrying out both stages in one reaction.
[0007] It is a further object of the,present invention to select a catalyst which not only
dehydro-isomerises normal butane to isobutene but is also capable of isomerising normal
butene to isobutene.
[0008] Accordingly, the present invention is a process for the dehydro- isomerisation of
a hydrocarbon feedstock containing normal butanes to isobutenes which comprises bringing
the hydrocarbon feedstock at an elevated temperature into contact with a catalyst
composition comprising an element from Group IIIa of the Periodic Table or a compound
thereof in combination with a support of α-value below 45.
[0009] The Group IIIa of the Periodic Table referred to herein is the Table appearing on
pp 448 and 449 of the Handbook of Chemistry and Physics, Ed. by Hodgman, M. S. et
al and published by the Chemical Rubber Publishing Company, Ohio, USA (1961, reprinted
1963).
[0010] The hydrocarbon feedstock containing normal butanes may be derived from any of the
well-known sources. For example the source of n-butane feed may be the by-products
from a petroleum refining process from which the C
1 to C
3 fraction and the C
5 and higher fractions have been separated. An alternative source of n-butane feed
may be gas fields and/or associated gas.
[0011] The Group IIIa element or a compound thereof used in the catalyst for the dehydro-isomerisation
process of the present invention is preferably a gallium compound, suitably gallium
oxide. The gallium compound is preferably deposited on a support selected from an
alumina, a silica and a silicate, eg a zeolite, including those with very low aluminium
content such as for example silicalite, metal tectosilicates or boralites, or gallium
ions are exchanged for cations already present in the support. The concentration of
gallium in the catalyst composition is suitably between 0.05% and 20%, preferably
between 0.2% and 3.0% by weight of the support.
[0012] The low acidity support preferably has an CC-value below 30. Such supports can also
be characterised by their inability to convert methanol into hydrocarbons rich in
aromatics below 500°C. Examples of such supports include aluminosilicate zeolites;
zeolites in which the framework aluminium is at least partially replaced by other
metals; silicalites; tectosilicates and boralites. The aluminosilicates which fall
into this class usually have a low number of acid sites, ie low alumina content although
those with a relatively high alumina content but in which the site acid activity is
low may also be used. Examples of such aluminosilicates are listed in Tables I and
II. An example of silicalite is Silicalite-2, described by Bibby, D. M. et al in Nature,
Vol 280, No 5724, pp 664-665 (1979). Metal tectosilicates eg gallosilicates of.low
-acidity can be used. Examples of boralites are typified in an article entitled "Molecular
Sieve Borosilicates", by Taramasso, M. Berego, G. and Notari, B. in the Proceedings
of the Fifth International Conference on Zeolites, Naples, 1980, pp 40-48, Edited
by Rees, L.V.C. and published by Heyden and Son Limited, London 1980. Those silicates
which have a relatively high acidity can be converted to the low acidity type by well
known deactivation processes including steaming and selective coking.
[0013] The dehydro-isomerisation reaction is carried out by passing the hydrocarbon feedstock
in the vapour phase over the catalyst maintained at an elevated temperature. The catalyst
is suitably maintained at a temperature above 200°C, preferably at a temperature between
350 and 700°C.
[0014] The isobutene may, if desired, be recovered from the dehydro- isomerisation reaction
products by any suitable separation process either physical or chemical. For example,
some of the chemical reactions are very selective towards isobutene. A typical example
is the reaction between isobutene and methanol to form methyl tertiary butyl ether.
In this case the product of the dehydro-isomerisation reaction may be reacted with
methanol directly without any preliminary separation of the isobutene and, when the
reaction is complete, the product is water washed to remove excess methanol and the
organic phase containing the product ether, normal butane, isobutane and normal butenes
is flash-distilled to recover as overheads the paraffins and normal olefins and as
bottoms the methyl tertiary butyl ether. In view of the versatile nature of the dehydro-isomerisation
catalyst of the present invention, the overheads thus recovered may be recycled directly
to the dehydro-isomerisation stage without any further separation thereby providing
a very simple process for producing methyl tertiary butyl ether from a feedstock which
predominantly contains normal butanes.
[0015] It is believed that the dehydro-isomerisation process of the present invention proceeds
through a transient intermediate stage wherein normal butenes are produced (together
with some isobutane' which are then subsequently isomerised. Under those circumstances,
there must be an equilibrium stage between the amount of normal butenes present and
the amount of isobutenes present both in the reactant and in the products. Therefore,
by controlling the amount of catalyst used in the process it will be possible to influence
the amount of a particular isomer formed in the product. It is for this reason that
the feed to the dehydro-isomerisation process can be a mixture of isomers such as
that which is recycled after the separation of methyl tertiary butyl ether.
[0016] If the dehydro-isomerisation process of the present invention is used as a.part of
the integrated process for producing methyl tertiary butyl ether from hydrocarbon
feedstock rich in normal butanes, the dehydro-isomerisation catalyst of the present
invention offers a further advantage in that it is capable of converting some of the
C
4 hydrocarbons in the feed to aromatics. In view of the fact that methyl tertiary butyl
ether is generally used as a gasoline blending component, the presence of aromatics
will incidentally enhance the blending characteristics of the ether and also improve
the octane value of the gasoline with which it is blended.
[0017] The process of the present invention is further illustrated with reference to the
following Examples.
[0018] In the Examples, the n-butane was passed over the specified catalyst for approximately
10 minutes (Examples 1, 2, 7, 8) or 30 minutes (Examples 3 - 6) at the given temperatures
and contact times and at atmospheric pressure. The amount of isobutene present in
the total yield of mixed butene formed was approximately 33% by weight.
Notes on the Table III
[0019]
(1) Ga-aluminosilicate catalyst made according to Example 1 of the published European
Patent Application No 0024930A1.
(2) Ga-aluminosilicate catalyst from the same batch as Note 1 was steam deactivated
in situ by passing over water vapour (0.2 mol/h) in air (76.2 ml/h, STP) at 570°C
for 10 hours then dried under dry air (76.2 ml/h, STP) for 3 hours at 570°C prior
to passing over butane as in Example 6.



Example 9
[0020] The crystalline gallosilicate was prepared in the following manner. 0.85 g of δ -Ga
2O
3 was added to a solution of 2.6 g NaOH in 25 g of deionised water and the resulting
mixture heated to 80°C. On complete dissolution of the oxide, the solution was filtered
and allowed to cool to room temperature (Solution A). 60.4 g of 200% w/w aqueous tetrapropylammonium
hydroxide solution was added to a mixture of 27 g of deionised water and 75 g of Ludox
AS40 (Registered Trade Mark) colloidal silica.(Solution B). Solution A was added to
Solution B with rapid stirring for 15 minutes. 80 ml of the resultant mixture was
heated in a sealed 100 ml capacity stainless steel bomb at 140°C for 60 hours. The
water washed and dried product was calcined at 580°C for 16 hours then refluxed twice
with 0.67 M aqueous NH
4N0
3 solution each for 1 hour then gallium loaded and bound in silica as in European Patent
Application No 0024930 Al.

1. A process for dehydroisomerisation of a hydrocarbon feedstock containing normal
butane to iso-butene which comprises bringing the feedstock at an elevated temperature
into contact with a catalyst composition comprising an element from Group IIIa of
the Periodic Table or a compound thereof in combination with a support of OC-value
below 45.
2. A process according to claim 1 wherein a gallium compound is deposited on a support.
3. A process according to claim 2 wherein the gallium compound is gallium oxide.
4. A process according to claim 1 wherein gallium ions from a gallium compound are
exchanged with cations on the support.
5. A process according to any one of the preceding claims wherein the support is selected
from silica, alumina, and a silicate.
6. A process according to claim 5 wherein the support is a zeolite selected from aluminosilicates,
a silicalite, a metal tectosilicate and a boralite.
7. A process according to any one of the preceding claims wherein the concentration
of gallium in the catalyst composition is between 0.05 and 20% by weight of the support.
8. A process according to any one of the preceding claims wherein the dehydroisomerisation
reaction is carried out by passing the feedstock in the vapour phase over the catalyst
composition maintained at a temperature between 350° and 700°C.
9. A process according to any one of the preceding claims wherein the isobutene formed
is separated from the dehydroisomerisation reaction products by conversion thereof
into methyl tertiarybutyl ether.
10. A process according to claim 9 wherein the conversion to methyl tertiarybutyl
ether is achieved by reacting the dehydroisomerisation products with methanol.